Candidate detoxification-related genes in brown planthopper, Nilaparvata lugens, in response to β-asarone based on transcriptomic analysis

被引:12
|
作者
Xu, Xueliang [1 ,2 ]
Li, Xiang [1 ]
Wang, Fenshan [2 ]
Han, Kehong [1 ]
Liu, Zirong [2 ]
Fan, Linjuan [2 ]
Hua, Hongxia [1 ]
Cai Wanlun [1 ]
Yao Yingjuan [2 ]
机构
[1] Huazhong Agr Univ, Coll Plant Sci & Technol, Hubei Insect Resources Utilizat & Sustainable Pes, Wuhan 430070, Hubei, Peoples R China
[2] Jiangxi Acad Agr Sci, Appl Agr Microorganism Res, Nanchang 330200, Jiangxi, Peoples R China
基金
中国国家自然科学基金;
关键词
Nilaparvata lugens; beta-asarone; Transcriptome analysis; Detoxification-related genes; Cytochrome P450 genes; CYTOCHROME-P450; MONOOXYGENASE; INSECTICIDE RESISTANCE; DIFFERENTIAL EXPRESSION; BOTANICAL INSECTICIDES; TOXICITY; RICE; OVEREXPRESSION; IDENTIFICATION; POPULATIONS; MECHANISMS;
D O I
10.1016/j.ecoenv.2019.109735
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Nilaparvata lugens (Stal) is a serious pest of rice and has evolved different levels of resistance against most chemical pesticides. beta-asarone is the main bioactive insecticidal compound of Acorus calamus L. that shows strong insecticidal activity against pests. In this study, we conducted a bioassay experiment to determine the contact toxicity of beta-asarone to N. lugens nymphs. The LD30 sublethal dose was 0.106 mu g per nymph, with 95% confidence limits of 0.070-0.140 mu g. We applied the LD30 concentration of beta-asarone to nymphs for 24 h or 72 h and then performed a transcriptome sequence analysis by referencing the N. lugens genome to characterize the variation. The transcriptomic analysis showed that several GO terms and KEGG pathways presented significant changes. Individually, 126 differentially expressed genes (DEGs), including 72 upregulated and 54 down regulated genes, were identified at 24 h, and 1771 DEGs, including 882 upregulated and 889 downregulated genes, were identified at 72 h. From the DEGs, we identified a total of 40 detoxification-related genes, including eighteen Cytochrome P450 monooxygenase genes (P450s), three Glutathione S-transferase genes, one Carboxylesterase gene, twelve UDP-glucosyltransferases and six ATP-binding cassette genes. We selected the eighteen P450s for subsequent verification by quantitative PCR. These findings indicated that beta-asarone presented strong contact toxicity to N. lugens nymphs and induced obvious variation of detoxification-related genes that may be involved in the response to beta-asarone.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Antibiotics increased host insecticide susceptibility via collapsed bacterial symbionts reducing detoxification metabolism in the brown planthopper, Nilaparvata lugens
    Tang, Tao
    Zhang, Yunhua
    Cai, Tingwei
    Deng, Xiaoqian
    Liu, Chaoya
    Li, Jingmin
    He, Shun
    Li, Jianhong
    Wan, Hu
    JOURNAL OF PEST SCIENCE, 2021, 94 (03) : 757 - 767
  • [22] Genetic analysis of brown planthopper, Nilaparvata lugens (Stål) (Hemiptera: Delphacidae) based on microsatellite markers
    Babu, Soumya Bharati
    Guru-Pirasanna-Pandi, Govindharaj
    Parameswaran, C.
    Padhi, Jayaraj
    Basana-Gowda, G.
    Annamalai, M.
    Patil, Naveenkumar
    Meher, Chanchala
    Sabarinathan, S.
    Rath, Prakash Chandra
    CURRENT SCIENCE, 2023, 125 (07): : 777 - 783
  • [23] Two critical detoxification enzyme genes, NlCYP301B1 and NlGSTm2 confer pymetrozine resistance in the brown planthopper (BPH), Nilaparvata lugens Stål
    Sun, Dan
    Zeng, Jiahui
    Xu, Qiuchen
    Wang, Mingyun
    Shentu, Xuping
    PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY, 2024, 206
  • [24] Zero effect of Bt rice on expression of genes coding for digestion, detoxification and immune responses and developmental performances of Brown Planthopper Nilaparvata lugens (Stal)
    Mannakkara, Amani
    Niu, Lin
    Ma, Weihua
    Lei, Chaoliang
    JOURNAL OF INSECT PHYSIOLOGY, 2013, 59 (10) : 985 - 993
  • [25] The microRNA pathway core genes are indispensable for development and reproduction in the brown planthopper, Nilaparvata lugens
    Wang, Ni
    Chen, Min
    Zhou, Ying
    Zhou, Wen-Wu
    Zhu, Zeng-Rong
    INSECT MOLECULAR BIOLOGY, 2023, 32 (05) : 528 - 543
  • [26] Secretome Analysis and In Planta Expression of Salivary Proteins Identify Candidate Effectors from the Brown Planthopper Nilaparvata lugens
    Rao, Weiwei
    Zheng, Xiaohong
    Liu, Bingfang
    Guo, Qin
    Guo, Jianping
    Wu, Yan
    Shangguan, Xinxin
    Wang, Huiying
    Wu, Di
    Wang, Zhizheng
    Hu, Liang
    Xu, Chunxue
    Jiang, Weihua
    Huang, Jin
    Shi, Shaojie
    He, Guangcun
    MOLECULAR PLANT-MICROBE INTERACTIONS, 2019, 32 (02) : 227 - 239
  • [27] Transcriptional Response of ATP-Binding Cassette (ABC) Transporters to Insecticide in the Brown Planthopper, Nilaparvata lugens (Stal)
    Li, Zhao
    Cai, Tingwei
    Qin, Yao
    Zhang, Yunhua
    Jin, Ruoheng
    Mao, Kaikai
    Liao, Xun
    Wan, Hu
    Li, Jianhong
    INSECTS, 2020, 11 (05)
  • [28] RNAi suppression of nuclear receptor genes results in increased susceptibility to sulfoxaflor in brown planthopper, Nilaparvata lugens
    Xu, Lu
    Zhao, Chun-Qing
    Xu, De-Jin
    Xu, Guang-Chun
    Xu, Xiao-Long
    Han, Zhao-Jun
    Zhang, Ya-Nan
    Gu, Zhong-Yan
    JOURNAL OF ASIA-PACIFIC ENTOMOLOGY, 2017, 20 (02) : 645 - 653
  • [29] Brown rice planthopper (Nilaparvata lugens Stal) detection based on deep learning
    He, Yue
    Zhou, Zhiyan
    Tian, Luhong
    Liu, Youfu
    Luo, Xiwen
    PRECISION AGRICULTURE, 2020, 21 (06) : 1385 - 1402
  • [30] Fine mapping, candidate genes analysis, and characterization of a brown planthopper (Nilaparvata lugens Stal) resistance gene in the rice variety ARC5984
    Lin, Jiebin
    Wang, Xinyi
    Li, Yang
    Bi, Fanggui
    Cheng, Ling
    Huang, Fengkuang
    Li, Rongbai
    Qiu, Yongfu
    EUPHYTICA, 2020, 216 (01)